• Title/Summary/Keyword: 이동물체 추적

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A Moving Object Tracking using Color and OpticalFlow Information (컬러 및 광류정보를 이용한 이동물체 추적)

  • Gim, Ju-Hyeon;Choi, Han-Go
    • Proceedings of the Korea Information Processing Society Conference
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    • 2013.05a
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    • pp.319-322
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    • 2013
  • 본 연구에서는 이동 객체를 컬러기반에서 추적하는데 있어 주변 환경 변화와 추적중인 객체 색상이 유사한 물체가 존재할 경우 보다 안정적으로 추적할 수 있는 방법을 제시한다. 백그라운드 차영상과 모폴로지 연산을 통하여 이동 객체를 검출하고, 매 프레임마다 발생하는 밝기 및 주변 환경의 영향을 고려하여 기존의 CamShift 알고리즘을 보완하였다. 추적 물체와 색상이 비슷한 주변 물체가 존재할 경우 개선된 CamShift는 불안정한 추적을 보여주었는데 이를 해결하기 위해 Optical Flow기반의 KLT 알고리즘과 병합하는 방법을 제시하였다. 실험 결과를 통해 제안된 추적 방법은 기존의 단점을 보완하였으며 추적성능이 개선됨을 확인하였다.

Boundary Line Extract for Moving Object Tracking (이동 물체 추적을 위한 경계선 추출)

  • Kim, Tea-Sik;Lee, Ju-Shin
    • Journal of the Korean Institute of Telematics and Electronics T
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    • v.35T no.2
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    • pp.28-34
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    • 1998
  • In this paper, I'd like to make a suggestion for boundary line detect algorithm which is used 3-D image processing system in order to track moving object. Through this study, more than anything else, difference image method was adopted to detect moving object in input image. To detect moving object, I made use of detect windows constructed by 4's predictive areas and object area for the purpose of reducing processing time and its size was determined by the size of moving object and prediction parameter directed center position. And also, tracking camera was movable toward the direction of X, Y by DC motor. As a conclusion of the study proposed algorithm, I found out the following results that tracking error was less than 6% of total moving object size and maximum tracking time 2 seconds by toy-car simulation.

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Shadow Removal Based on Chromaticity and Entropy for Efficient Moving Object Tracking (효과적인 이동물체 추적을 위한 색도 영상과 엔트로피 기반의 그림자 제거)

  • Park, Ki-Hong
    • Journal of Advanced Navigation Technology
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    • v.18 no.4
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    • pp.387-392
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    • 2014
  • Recently, various research for intelligent video surveillance system have been proposed, but the existing monitoring systems are inefficient because all of situational awareness is judged by the human. In this paper, shadow removal based moving object tracking method is proposed using the chromaticity and entropy image. The background subtraction model, effective in the context awareness environment, has been applied for moving object detection. After detecting the region of moving object, the shadow candidate region has been estimated and removed by RGB based chromaticity and minimum cross entropy images. For the validity of the proposed method, the highway video is used to experiment. Some experiments are conducted so as to verify the proposed method, and as a result, shadow removal and moving object tracking are well performed.

Object boundary tracking using modified boundary tracking algorithm (수정된 경계추적 방법을 이용한 물체의 윤곽선 추적)

  • Ko, Jong-Hwna;Kwon, Woo-Hyen;Im, Sung-Soon;Choi, Youn-Ho
    • Proceedings of the KIEE Conference
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    • 2007.10a
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    • pp.419-420
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    • 2007
  • 영상에서 경계선 추적은 영상내에 존재하는 특정 물체가 배경과 구분되어지는 외각선을 검출하기 위해 사용되어지는 알고리즘이다. 이렇게 해서 얻어진 외각선의 데이터는 물체를 분석하는데 사용되어 질 수 있다. 본 논문에서는 물체의 외각선 데이터를 획득하기 위해 사용되어지는 경계선 추적 알고리즘중 검색윈도우의 중심점 이동 횟수를 개선한 이동벡터 윈도우 알고리즘과 간단한 경계 추적자(SBF:Simple Boundary Follower)알고리즘을 부분적으로 적용하여 검색윈도우의 중심점 이동횟수 및 검색픽셀의 수를 줄이기 위한 방법을 제안한다. 제안한 경계선 추적 방법은 직선보다는 곡선이 많이 포함되어 있는 물체의 경계선을 추적하는데 보다 효과적임을 실험을 통하여 확인 할 수 있었다.

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The Interesting Moving Objects Tracking Algorithm using Color Informations on Multi-Video Camera (다중 비디오카메라에서 색 정보를 이용한 특정 이동물체 추적 알고리듬)

  • Shin, Chang-Hoon;Lee, Joo-Shin
    • The KIPS Transactions:PartB
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    • v.11B no.3
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    • pp.267-274
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    • 2004
  • In this paper, the interesting moving objects tracking algorithm using color information on Multi-Video camera is proposed Moving objects are detected by using difference image method and integral projection method to background image and objects image only with hue area, after converting RGB color coordination of image which is input from multi-video camera into HSI color coordination. Hue information of the detected moving area are normalized by 24 steps from 0$^{\circ}$ to 360$^{\circ}$ It is used for the feature parameters of the moving objects that three normalization levels with the highest distribution and distance among three normalization levels after obtaining a hue distribution chart of the normalized moving objects. Moving objects identity among four cameras is distinguished with distribution of three normalization levels and distance among three normalization levels, and then the moving objects are tracked and surveilled. To examine propriety of the proposed method, four cameras are set up indoor difference places, humans are targeted for moving objects. As surveillance results of the interesting human, hue distribution chart variation of the detected Interesting human at each camera in under 10%, and it is confirmed that the interesting human is tracked and surveilled by using feature parameters at four cameras, automatically.

Real-time Moving Object Tracking from a Moving Camera (이동 카메라 영상에서 이동물체의 실시간 추적)

  • Chun, Quan;Lee, Ju-Shin
    • The KIPS Transactions:PartB
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    • v.9B no.4
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    • pp.465-470
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    • 2002
  • This paper presents a new model based method for tracking moving object from a moving camera. In the proposed method, binary model is derived from detected object regions and Hausdorff distance between the model and edge image is used as its similarity measure to overcome the target's shape changes. Also, a novel search algorithm and some optimization methods are proposed to enable realtime processing. The experimental results on our test sequences demonstrate the high efficiency and accuracy of our approach.

Algorithm for Object Tracking Using Histogram Projection from Moving Camera (히스토그램 프로젝션을 이용한 이동 카메라로부터의 물체 추적 알고리즘)

  • 설성욱;이희봉;남기곤;이철헌
    • Proceedings of the Korea Institute of Convergence Signal Processing
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    • 2001.06a
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    • pp.245-248
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    • 2001
  • 본 논문은 히스토그램 백 프로젝션, 히스토그램 인터 섹션 그리고 XY-프로젝션을 이용하여 물체를 분할하고 정합하여 물체 추적 시스템에 적용하고자 한다. 물체 추적 시스템에서 실시간 처리를 위하여 물체정합 모델은 계산량이 적고, 물체의 변화에도 일관성이 있어야 한다. 본 논문에서 제안한 물체정합 모델은 이러한 물체 추적 시스템에 적합하다. 본 논문에서는 움직이는 카메라로부터 획득된 영상에서 물체를 정합하는 것을 보였으며, 물체를 큰 오차 없이 추적함을 보였다.

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Population Movement Analysis Using Visual Object Tracking (다중물체추적을 이용한 유동인구 행태 분석)

  • Choi, Kyuh-Young;Choi, Young-Ju;Jung, Ji-Hong;Seo, Yong-Duek
    • Proceedings of the Korean Society of Broadcast Engineers Conference
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    • 2007.02a
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    • pp.83-86
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    • 2007
  • 비디오에서의 물체 추적은 컴퓨터비젼(computer vision)의 주요 연구 분야로 지능형 로봇, 무인 감시 체제 등의 영역의 핵심 기술로 여겨지고 있다. 본 논문에서는 다중물체추적을 통해 카메라로 부터 입력된 동영상에서 특정 장소를 지나가는 사람들을 추적함으로서, 그 지역에서의 인구의 이동 패턴을 추출하고 자 한다. 물체 추적은 블롭 추적(blob tracking) 방식을 이용하며, 이를 위해 정확한 전경물체 추출, 추출된 이미지 블롭(blob)과 기존 트랙과의 연결, 새로운 물체(사람)의 등장과 퇴장등의 작업을 수행한다. 추적된 물체들이 궤적을 통해, 시간의 변화에 따른 그 지역에서의 인구의 밀도, 주 이동 경로, 방향 등의 변화를 추출한다. 이러한 통계치는 해당 지역의 개발 정책 수립 및 시장성 조사를 위한 2차 데이타로 활용할 수 있다.

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The Recognition of Crack Detection Using Difference Image Analysis Method based on Morphology (모폴로지 기반의 차영상 분석기법을 이용한 균열검출의 인식)

  • Byun Tae-bo;Kim Jang-hyung;Kim Hyung-soo
    • Journal of the Korea Institute of Information and Communication Engineering
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    • v.10 no.1
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    • pp.197-205
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    • 2006
  • This paper presents the moving object tracking method using vision system. In order to track object in real time, the image of moving object have to be located the origin of the image coordinate axes. Accordingly, Fuzzy Control System is investigated for tracking the moving object, which control the camera module with Pan/Tilt mechanism. Hereafter, so the this system is applied to mobile robot, we design and implement image processing board for vision system. Also fuzzy controller is implemented to the StrongArm board. Finally, the proposed fuzzy controller is useful for the real-time moving object tracking system by experiment.

Tracking Moving Object using Hierarchical Search Method (계층적 탐색기법을 이용한 이동물체 추적)

  • 방만식;김태식;김영일
    • Journal of the Korea Institute of Information and Communication Engineering
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    • v.7 no.3
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    • pp.568-576
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    • 2003
  • This paper proposes a moving object tracking algorithm by using hierarchical search method in dynamic scenes. Proposed algorithm is based on two main steps: generation step of initial model from different pictures, and tracking step of moving object under the time-yawing scenes. With a series of this procedure, tracking process is not only stable under far distance circumstance with respect to the previous frame but also reliable under shape variation from the 3-dimensional(3D) motion and camera sway, and consequently, by correcting position of moving object, tracking time is relatively reduced. Partial Hausdorff distance is also utilized as an estimation function to determine the similarity between model and moving object. In order to testify the performance of proposed method, the extraction and tracking performance have tested using some kinds of moving car in dynamic scenes. Experimental results showed that the proposed algorithm provides higher performance. Namely, matching order is 28.21 times on average, and considering the processing time per frame, it is 53.21ms/frame. Computation result between the tracking position and that of currently real with respect to the root-mean-square(rms) is 1.148. In the occasion of different vehicle in terms of size, color and shape, tracking performance is 98.66%. In such case as background-dependence due to the analogy to road is 95.33%, and total average is 97%.